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Parallel Architectures for Learning the RTRN and Elman Dynamic Neural Networks

机译:用于学习RTRN和Elman动态神经网络的并行架构

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摘要

A major problem encountered by researchers of dynamic neural networks is the computational complexity increasing the learning time. In this paper the parallel realization of the RTRN and the Elman networks are discussed. Both networks are examples of dynamic neural networks. Inherent parallelism of dynamic neural networks has been employed to accelerate the learning process. The proposed solution is based on a highly parallel three dimensional architecture to speed up the learning performance. The presented structures are suitable for efficient parallel realization in digital hardware or vector processors.
机译:动态神经网络研究人员遇到的主要问题是计算复杂度增加了学习时间。本文讨论了RTRN和Elman网络的并行实现。这两个网络都是动态神经网络的示例。动态神经网络的固有并行性已被用来加速学习过程。所提出的解决方案基于高度并行的三维体系结构,以加快学习性能。提出的结构适用于数字硬件或矢量处理器中的有效并行实现。

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